Papers

20 results
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Article Tier 2

Enhanced degradation of polyethylene terephthalate (PET) microplastics by an engineered Stenotrophomonas pavanii in the presence of biofilm

Scientists engineered a biofilm-forming bacterium to break down PET microplastics (the type found in water bottles and food containers) at room temperature. The engineered bacteria achieved significant PET degradation over 30 days and also worked on other polyester plastics, offering a potential biological solution for cleaning up microplastic pollution in water environments.

2024 The Science of The Total Environment 20 citations
Article Tier 2

Interfacial engineering-based colonization of biofilms on polyethylene terephthalate (PET) surfaces: Implications for whole-cell biodegradation of microplastics

This study applied interfacial engineering to promote biofilm colonization on polyethylene terephthalate (PET) surfaces to facilitate enzymatic depolymerization under mild conditions. The engineered biofilm approach enabled efficient PET biodegradation without requiring harsh alkaline conditions or high temperatures, advancing practical plastic bioremediation.

2024 The Science of The Total Environment 4 citations
Article Tier 2

Enzymatic Degradation of Polyethylene Terephthalate Plastics by Bacterial Curli Display PETase

Researchers engineered bacteria to display a PET-degrading enzyme on their surface, creating a reusable biocatalyst capable of breaking down polyethylene terephthalate plastics. The system worked under various conditions, remained stable for at least 30 days, and could even degrade PET microplastics in wastewater and highly crystalline consumer plastic waste. This biological approach offers a promising environmentally friendly alternative for plastic recycling and waste treatment.

2022 Environmental Science & Technology Letters 85 citations
Article Tier 2

Targeted aggregation of PETase towards surface of Stenotrophomonas pavanii for degradation of PET microplastics

Researchers developed a strategy to target PETase enzyme to the surface of Stenotrophomonas pavanii bacteria, improving the efficiency of in-situ PET microplastic degradation. Surface-displayed PETase showed significantly enhanced PET hydrolysis compared to free enzyme, offering a practical approach to microbial degradation of dispersed PET microplastics in environmental settings.

2024 Journal of Hazardous Materials 9 citations
Article Tier 2

Biodegradation of highly crystallized poly(ethylene terephthalate) through cell surface codisplay of bacterial PETase and hydrophobin

Researchers engineered yeast cells to display both a PET-degrading enzyme (PETase) and a sticky protein (hydrophobin) on their surface simultaneously, dramatically improving the breakdown of highly crystalline PET plastic — achieving a 329-fold increase in degradation rate compared to the purified enzyme alone. This whole-cell biocatalyst approach could make enzymatic plastic recycling far more practical and efficient.

2022 Nature Communications 126 citations
Article Tier 2

Eco-Microbiology: Discovering Biochemical Enhancers of PET Biodegradation by Piscinibacter sakaiensis

This paper reviews biochemical strategies for enhancing PET biodegradation by microorganisms, focusing on the discovery and engineering of plastic-degrading enzymes. The review highlights recent advances and remaining challenges in scaling up enzymatic plastic degradation for industrial applications.

2024
Article Tier 2

Strategies for biofilm optimization of plastic-degrading microorganisms and isolating biofilm formers from plastic-contaminated environments

This study investigated biofilm formation as a prerequisite for microbial plastic degradation, both optimizing biofilm formation in known plastic degraders and isolating novel biofilm formers from plastic-contaminated environments. Strategies to enhance surface colonization were evaluated as a practical step toward improving plastic biodegradation efficiency.

2024 Sustainable Microbiology 8 citations
Article Tier 2

Enhancing PET Degrading Enzymes: A Combinatory Approach

Scientists worked on improving enzymes that can break down PET plastic, one of the most common plastics in consumer products. Using a combinatory approach, researchers enhanced the performance of a naturally occurring PET-degrading enzyme from the bacterium Piscinibacter sakaiensis. The study suggests that engineered enzymes could eventually help create a circular economy for plastic waste by enabling efficient recycling at the molecular level.

2024 ChemBioChem 21 citations
Article Tier 2

Development and characterization of a bacterial enzyme cascade reaction system for efficient and stable PET degradation

Scientists engineered a bacterial system that displays plastic-degrading enzymes on the cell surface to efficiently break down PET plastic, achieving a 23% degradation rate of microplastics within 7 days. The system uses E. coli bacteria with specially designed protein fibers that both grip and digest PET fragments. This biotechnology approach could eventually help address the growing problem of microplastic pollution in water and soil environments.

2024 Journal of Hazardous Materials 18 citations
Article Tier 2

Degradation of PET plastic with engineered environmental bacteria

Scientists engineered a soil bacterium to break down PET plastic, one of the most common plastics in food packaging and textiles, by giving it the ability to produce and secrete a powerful plastic-degrading enzyme. This is one of the first demonstrations of a living microorganism that can directly consume PET as a food source, which could lead to more sustainable recycling approaches.

2024 4 citations
Article Tier 2

Increased cytoplasmic expression of PETase enzymes in E. coli.

Researchers optimized the production of PETase — an enzyme that breaks down PET plastic — in E. coli bacteria, achieving higher yields of active enzyme using a bioreactor. Improving enzyme production methods is a key step toward scaling up biological plastic recycling to address PET pollution in the environment.

2024 Microbial cell factories
Article Tier 2

Enrichment of native plastic‐associated biofilm communities to enhance polyester degrading activity

Researchers found that expanded polystyrene promotes high levels of bacterial biofilm formation and demonstrated that native plastic-associated microbial communities from environmental waste can be enriched to enhance polyester-degrading activity, offering potential for biological plastic remediation.

2023 Environmental Microbiology 33 citations
Article Tier 2

Biodegradation of Poly(Ethylene Terephthalate) Microplastics by Baceterial Communities From Activated Sludge

Scientists isolated bacteria from wastewater treatment sludge that can biodegrade PET plastic, used in plastic bottles and food packaging. The bacteria broke down PET microplastics over a 60-day period, pointing toward a potential biological tool for removing plastic contamination from water treatment systems.

2021
Article Tier 2

Biodegradation of Poly(Ethylene Terephthalate) Microplastics by Baceterial Communities From Activated Sludge

Scientists isolated bacteria from wastewater treatment sludge that can biodegrade PET plastic, used in plastic bottles and food packaging. The bacteria broke down PET microplastics over a 60-day period, pointing toward a potential biological tool for removing plastic contamination from water treatment systems.

2021 1 citations
Article Tier 2

Discovery and rational engineering of PET hydrolase with both mesophilic and thermophilic PET hydrolase properties

Researchers discovered a new enzyme from a soil bacterium that can break down PET plastic — the material in most plastic bottles — at both room temperature and elevated heat, then engineered an improved version that degrades PET powder almost completely within half a day at 55°C. This dual-temperature capability makes it more practical than existing enzymes for industrial-scale plastic recycling and could help address the global PET waste problem.

2023 Nature Communications 100 citations
Article Tier 2

Towards synthetic PETtrophy: Engineering Pseudomonas putida for concurrent polyethylene terephthalate (PET) monomer metabolism and PET hydrolase expression

Researchers engineered a soil bacterium to simultaneously break down PET plastic and use its building-block chemicals as food, identifying key bottlenecks in balancing enzyme production with bacterial fitness that will need to be resolved before such microbes can be used for large-scale plastic biodegradation.

2022 Microbial Cell Factories 62 citations
Article Tier 2

Genetic Enhancement of Plastic Degrading Bacteria: The Way to a Sustainable and Healthy Environment

Researchers review how genetic engineering of plastic-degrading bacteria could accelerate the biological breakdown of plastic waste, highlighting promising enzymes and metabolic pathways. Engineering microbes with enhanced plastic-digesting capabilities could become an important tool for reducing the global accumulation of microplastics in the environment.

2023 Preprints.org 1 citations
Article Tier 2

Bacterial consortia based enhanced biofilm mediated synthetic plastic waste treatment

Researchers investigated bacterial consortia-enhanced biofilm formation as a biodegradation strategy for synthetic plastic waste, examining how multi-species consortia can improve polymer degradation performance compared to single organisms, positioning biodegradation as a sustainable approach to reducing plastic accumulation in air, water, and soil.

2025 The Journal of Solid Waste Technology and Management
Article Tier 2

Biodegradation of Plastic and the Role of Microbial Enzymes in Plastic Waste Management

This review examines how microbial enzymes, particularly PET hydrolases and oxidative enzymes, can depolymerize and break down common plastic polymers through biological degradation. The study suggests that enzymatic approaches to plastic waste management offer a promising complement to mechanical and chemical recycling, though optimizing enzyme activity and scaling up the process remain key challenges.

2026 International Journal of Education Management and Technology
Article Tier 2

Adsorption of enzymes with hydrolytic activity on polyethylene terephthalate

Researchers characterized how three PET-degrading enzymes bind to polyethylene terephthalate plastic surfaces, finding high non-specific adsorption affinity but no evidence of active-site ligand binding, and noting that enzymatic hydrolysis progressively increases the PET surface's binding capacity over time.

2021 Enzyme and Microbial Technology 48 citations